Purification and Characterization of the D-xylulokinase from Candida sp. L-16

Candida sp. L-16이 생산하는 D-Xylulokinase의 정제 및 특성

  • 이종수 (대구산업정보대학 식품가공과) ;
  • 주길재 (경북대 농업과학기술연구소)
  • Published : 2002.12.01

Abstract

The D-xylulokinase from Candida sp. L-16 was purified through a sequence of ammonium sulfate fractionation, DEAE-cellulose chromatography, Sephadex G-100 and Sephadex G-200 gel filtration. The specific activity of the purified Dxylulokinase was increased to 23.2 fold and the yield was 11.2%. The enzyme was showed to be a single protein band by SDS-PAGE. The molecular weight of the enzyme was 150,000 dalton, this enzyme was identified to be a dimer with two subunits. The optimum conditions of the enzyme were pH 8.0 and 40$\^{C}$, respectively. The enzyme was relatively stable between pH 7.0 to pH 9.0, but it was unstable over 30$\^{C}$. The enzyme showed substrate specificity on D-xylulose, D-arabinose and D-ribose, Km value and Vmax for D-xylulose were 0.042 mM and 117 units/ml, respectively. The activation energy of the enzyme was 4.75 Kcal/mol. The one was inhibited by metabolic intermediates such as 6-phosphogluconic acid, 2-keto-gluconic acid. The enzyme was activated by EDTA and thiol compounds such as cysteine-HCI, DTT and glutathione.

Candida sp. L-16 균주가 생산하는 D-xylulokinase는 배양균체를 초음파 파쇄한 조효소액으로 하여 황산암모늄 염석, DEAE-cellulose, chromatography, Sephadex G-100과 Sephadex G-200 gel filtration 과정으로 정제하여 최종 수율 11.2%로 약 23.2배 정제하였다. 정제 효소의 분자량은 SDS-PAGE로 분석한 결과 분자량은 75,000 dalton으로, Sephadex G-200겔 여과에 의해 150,000 dalton으로 나타나 dimer로 확인되었다. 효소 활성에 미치는 최적 반응 온도는 4$0^{\circ}C$로 나타났고, 온도안정성은 비교적 불안정하여 3$0^{\circ}C$이상에서는 빠르게 실활되었다. 정제 효소의 최적 반응 pH는 pH 8.0이었고, pH 7.0에서 pH 9.0 사이에서 비교적 효소활성이 높았다. 본 효소는 D-xylulose, D-arabinose, D-ribose등에서는 높은 기질특이성을 가지고 있었으나 D-xylose, D-glucose, L-arabinose 등은 기질로서 작용하지 못하였다. 정제 효소의 활성화 에너지값(Ea)은 $25^{\circ}C$ 내지 4$0^{\circ}C$$^{\circ}C$의 온도 범위에서 4.75kcal/mol이었다. 효소의 활성화제로는 EDTA, cysteine-HCl, DTT, glutathione 등이 존재하며 억제제로는 6-phosphogluconic acid, 2-koeto-gluconic acid 등으로 나타났다.

Keywords

References

  1. Wardrop, A.B. (1964) Formation of wood in forest treee. Academic press, New York, pp 87-134
  2. Cowling, E.B. and Kirk, T.K. (1976) Properties of cellulose and lignocellulosic materials as substrates for enzymatic conversion process. Biotechnol. Bioeng. Symp., 6, 95-123
  3. Chang, C. and Knight, S.G. (1960) Metabolism of D-Xylose by molds. Nature. 188, 79-81 https://doi.org/10.1038/188079a0
  4. Mitsuhashi, S. and Lampen, J.O. (1953) Conversion of D-xylose to D-xylulose in extracts of lactobacillus pentosus. J Biol. Chem., 204, 1011-1018
  5. Alexander, N.J. (1985) Temperature sensitivity of the induction of xylose reductase in Pachysolen tannophilus. Biotechnol. Bioeng., 27, 1739-1744 https://doi.org/10.1002/bit.260271218
  6. Smiley, K.L. and Bolen, P.L. (1982) Demonstration of D-xylose reductase and D-Xylitol dehydrogenase in Pachysolen tannophilus. Biotechnol. Lett., 4, 607-610 https://doi.org/10.1007/BF00127793
  7. Ditzelmuller, G., Kubicek, C.P., Woher, W. and Rohr, M. (1984) Xylose metabolism in Pachysolen tannophilus purification and properties of xylose reductase. Can. J. Microbiol., 30, 1330-1336 https://doi.org/10.1139/m84-214
  8. Slininger, P.J., Bolen, P.L., and Kurtzman, C.P. (1987) Pachysolen tannophilus: properties and process consideration for ethanol production from D-xylose. Enzyme Microb. Technol., 9, 5-15 https://doi.org/10.1016/0141-0229(87)90043-3
  9. Lee, J.S. (1993) Ethanol fermentation from D-xylose by Candida sp. L-16. A thesis of doctor, Kyungpook National University.
  10. Simpson, J. F. (1966) Methods in enzymology, 9, 454-458 https://doi.org/10.1016/0076-6879(66)09093-1
  11. Laemmli, U.K. (1970) Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 227, 680-685 https://doi.org/10.1038/227680a0
  12. Andrews, P. (1964) Estimation of the molecular weights of proteins by Sephadex gel filtration. Biochem. J., 91, 222-233 https://doi.org/10.1042/bj0910222
  13. Mortlock, R.P., Fossitt, D.D., Petering, D.H. and Wood, W.A. (1965) Metabolism of pentose and pentitols by Aerobacter aerogenes. J. Bacteriol., 89, 120-135
  14. Wilson, B.L. and Mortlock, R.P. (1973) Regulation of D-xylose and arabitol catabolism by Aerobacter aerogenes. J. Bacteriol., 113, 1403-1411
  15. Neuberger, M.S., Hartley, B.S. and Walker, J.E. (1981) Purification and properties of D-ribulokinase and D-xylulokinase from Klebsiella aerogenes. Biochem. J., 193, 513-524 https://doi.org/10.1042/bj1930513